Yu Dong, Zhou Xiuying, Wang Guowei, Ding Qianming, Li Tianyu, Jia Ya
Institute of Biophysics and Department of Physics, Central China Normal University, Wuhan, 430079 China.
Cogn Neurodyn. 2022 Aug;16(4):887-897. doi: 10.1007/s11571-021-09743-5. Epub 2021 Nov 6.
The influences of chaotic activity and time delay on the transmission of the sub-threshold signal (STS) in a single FitzHugh-Nagumo neuron and coupled neuronal networks are studied. It is found that a moderate chaotic activity level can enhance the system's detection and transmission of STS. This phenomenon is known as chaotic resonance (CR). In a single neuron, the large amplitude and small period of the STS have a positive effect on the CR phenomenon. In the coupled neuronal network, however, the signal transmission performance of chemical synapses is better than that of electrical synapses. The time delay can determine the trend of the system response, and the multiple chaotic resonances phenomenon is observed upon fine-tuning the time delay length. Both sub-harmonic chaotic resonance and chaotic anti-resonance appear when the STS period and time delay are locked. In chained networks, the signal transmission performance between electrical synapses attenuates continuously. Conversely, the performance between chemical synapses reaches a steady state.
研究了混沌活动和时间延迟对单个FitzHugh-Nagumo神经元及耦合神经元网络中亚阈值信号(STS)传输的影响。研究发现,适度的混沌活动水平可以增强系统对STS的检测和传输。这种现象被称为混沌共振(CR)。在单个神经元中,STS的大振幅和小周期对CR现象有积极影响。然而,在耦合神经元网络中,化学突触的信号传输性能优于电突触。时间延迟可以决定系统响应的趋势,并且在微调时间延迟长度时会观察到多重混沌共振现象。当STS周期和时间延迟锁定时,会出现次谐波混沌共振和混沌反共振。在链式网络中,电突触之间的信号传输性能持续衰减。相反,化学突触之间的性能达到稳定状态。